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Basically what I want to do is take a file, bring its binary data(decimal of course) into an list and then generate a grayscale bitmap image using PIL based on that list.

For example if the file is 5000 bytes (image size will be 100 x 50) and each byte is an integer between 0 and 255, I want to paint the first byte to the first pixel and go down the row until all bytes are exhausted.

The only thing I got so far is reading the file in:

f = open(file, 'rb')
text = f.read()
for s in text:
    print(s)

This outputs the bytes in decimal.

I'm looking for some direction on how to accomplish this. I've done a lot of searching, but it doesn't seem too many have tried doing what I want to do.

Any help would be greatly appreciated!

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"binary data(decimal of course)" There is something I clearly don't understand about bases. –  IfLoop May 26 '12 at 3:17
    
base 2 = only 2 possible digits "1" and "0" AKA binary. base 10 = 10 possible digits (0-9) AKA decimal. base 16 = 16 possible digits (0-9, A-F) AKA hex....hopefully this helps –  clrx May 26 '12 at 3:32

3 Answers 3

From the PIL Image documentation:

Image.fromstring(mode, size, data)

For your example:

im = Image.fromstring('L', (100, 50), text)

There's also a frombuffer function, but the difference isn't obvious.

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It can't be that simple...can it? –  clrx May 26 '12 at 4:15

I don't think using PIL for this would be incredibly efficient, but you can look into the ImageDraw module if you are looking to paint onto a blank canvas.

My approach would be a bit different: since your file format resembles the Netpbm format very closely, I would try converting it. For simplicity, try adding/manipulating the headers of your format while reading it so that PIL can read it natively.

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I think this should do it. Is scipy an option?

In [34]: f = open('image.bin', 'r')

In [35]: Y = scipy.zeros((100, 50))

In [38]: for i in range(100):
             for j in range(50):
                 Y[i,j] = ord(f.read(1))

In [39]: scipy.misc.imsave('image.bmp', Y)
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